Title :
Adaptive envelope control design for a Buoyant Airborne wind energy system
Author :
Samson, Jonathan ; Katebi, Reza
Author_Institution :
Wind energy doctoral training center, Univ. of Strathclyde, Glasgow, UK
Abstract :
The focus of this paper is centered on the Buoyant Airborne Turbine (BAT) developed by Altaeros Energies. This system is part of a new class of wind energy system known as Airborne wind energy systems (AWES). To inform the reader, a brief review of the current control architecture for different types of AWES is presented. The paper then evaluates the control architecture for the Altaeros system and illustrates through a frequency domain analysis the impact that operating conditions will have on movement in roll, pitch and altitude. The primary contribution of this paper rests in the design of a multiloop novel adaptive low level PD controller that is developed from linearized models covering the full operating envelope. PD gains are adapted as a function of the system operating conditions and tuned as a function of the multi-loop bandwidth. As such it is shown that the control design varies with wind conditions and so facilitates the need for this adaptive approach. This work illustrates that a model free multiloop controller can be achieved without the need for extensive calibration parameters as in the classic LQR approach and demonstrates the merits of simplified PD tuning strategies when faced with complex multivariable problems.
Keywords :
PD control; adaptive control; aircraft control; control system synthesis; frequency-domain analysis; linearisation techniques; power generation control; vehicle dynamics; wind power; wind power plants; wind turbines; AWES; Altaeros Energies; PD gains; PD tuning strategies; adaptive envelope control design; altitude; buoyant airborne wind energy system; complex multivariable problems; control architecture evaluation; frequency domain analysis; linearized models; model free multiloop controller; multiloop bandwidth; multiloop novel adaptive low level PD controller; pitch; roll; system operating conditions; wind conditions; Aerodynamics; Medical services; Training; Winches; Wind speed;
Conference_Titel :
American Control Conference (ACC), 2015
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-4799-8685-9
DOI :
10.1109/ACC.2015.7171091